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sr_dev_close(): Set status to SR_ST_INACTIVE.
[libsigrok.git] / src / hardware / baylibre-acme / api.c
1 /*
2  * This file is part of the libsigrok project.
3  *
4  * Copyright (C) 2015 Bartosz Golaszewski <bgolaszewski@baylibre.com>
5  *
6  * This program is free software: you can redistribute it and/or modify
7  * it under the terms of the GNU General Public License as published by
8  * the Free Software Foundation, either version 3 of the License, or
9  * (at your option) any later version.
10  *
11  * This program is distributed in the hope that it will be useful,
12  * but WITHOUT ANY WARRANTY; without even the implied warranty of
13  * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
14  * GNU General Public License for more details.
15  *
16  * You should have received a copy of the GNU General Public License
17  * along with this program.  If not, see <http://www.gnu.org/licenses/>.
18  */
19
20 #include <config.h>
21 #include "protocol.h"
22 #include <time.h>
23 #include <sys/timerfd.h>
24
25 static const uint32_t devopts[] = {
26         SR_CONF_CONTINUOUS,
27         SR_CONF_LIMIT_SAMPLES | SR_CONF_GET | SR_CONF_SET,
28         SR_CONF_LIMIT_MSEC | SR_CONF_GET | SR_CONF_SET,
29         SR_CONF_SAMPLERATE | SR_CONF_GET | SR_CONF_SET | SR_CONF_LIST,
30 };
31
32 /*
33  * Currently there are two channel-group/probe options for ACME:
34  *   - SR_CONF_PROBE_FACTOR - allows to modify current shunt resistance
35  *     calibration
36  *   - SR_CONF_POWER_OFF - allows to remotely cut-off/restore power to
37  *     measured devices
38  *
39  * They are not static - we have to check each probe's capabilities in
40  * config_list().
41  */
42 #define MAX_DEVOPTS_CG          2
43 #define HAS_PROBE_FACTOR        (SR_CONF_PROBE_FACTOR | SR_CONF_GET | SR_CONF_SET)
44 #define HAS_POWER_OFF           (SR_CONF_POWER_OFF | SR_CONF_GET | SR_CONF_SET)
45
46 #define MAX_SAMPLE_RATE 500 /* In Hz */
47
48 static const uint64_t samplerates[] = {
49         SR_HZ(1),
50         SR_HZ(MAX_SAMPLE_RATE),
51         SR_HZ(1),
52 };
53
54 static GSList *scan(struct sr_dev_driver *di, GSList *options)
55 {
56         struct dev_context *devc;
57         struct sr_dev_inst *sdi;
58         gboolean status;
59         int i;
60
61         (void)options;
62
63         devc = g_malloc0(sizeof(struct dev_context));
64         devc->samplerate = SR_HZ(10);
65
66         sdi = g_malloc0(sizeof(struct sr_dev_inst));
67         sdi->status = SR_ST_INACTIVE;
68         sdi->vendor = g_strdup("BayLibre");
69         sdi->model = g_strdup("ACME");
70         sdi->priv = devc;
71
72         status = bl_acme_is_sane();
73         if (!status)
74                 goto err_out;
75
76         /*
77          * Iterate over all ACME connectors and check if any probes
78          * are present.
79          */
80         for (i = 0; i < MAX_PROBES; i++) {
81                 /*
82                  * First check if there's an energy probe on this connector. If
83                  * not, and we're already at the fifth probe - see if we can
84                  * detect a temperature probe.
85                  */
86                 status = bl_acme_detect_probe(bl_acme_get_enrg_addr(i),
87                                               PROBE_NUM(i), ENRG_PROBE_NAME);
88                 if (status) {
89                         /* Energy probe detected. */
90                         status = bl_acme_register_probe(sdi, PROBE_ENRG,
91                                         bl_acme_get_enrg_addr(i), PROBE_NUM(i));
92                         if (!status) {
93                                 sr_err("Error registering power probe %d",
94                                        PROBE_NUM(i));
95                                 continue;
96                         }
97                 } else if (i >= TEMP_PRB_START_INDEX) {
98                         status = bl_acme_detect_probe(bl_acme_get_temp_addr(i),
99                                               PROBE_NUM(i), TEMP_PROBE_NAME);
100                         if (status) {
101                                 /* Temperature probe detected. */
102                                 status = bl_acme_register_probe(sdi,PROBE_TEMP,
103                                         bl_acme_get_temp_addr(i), PROBE_NUM(i));
104                                 if (!status) {
105                                         sr_err("Error registering temp "
106                                                "probe %d", PROBE_NUM(i));
107                                         continue;
108                                 }
109                         }
110                 }
111         }
112
113         /*
114          * Let's assume there's no ACME device present if no probe
115          * has been registered.
116          */
117         if (!sdi->channel_groups)
118                 goto err_out;
119
120         return std_scan_complete(di, g_slist_append(NULL, sdi));
121
122 err_out:
123         g_free(devc);
124         sr_dev_inst_free(sdi);
125
126         return NULL;
127 }
128
129 static int dev_open(struct sr_dev_inst *sdi)
130 {
131         (void)sdi;
132
133         return SR_OK;
134 }
135
136 static int dev_close(struct sr_dev_inst *sdi)
137 {
138         (void)sdi;
139
140         return SR_OK;
141 }
142
143 static int config_get(uint32_t key, GVariant **data,
144                       const struct sr_dev_inst *sdi,
145                       const struct sr_channel_group *cg)
146 {
147         struct dev_context *devc;
148         int ret;
149         uint64_t shunt;
150         gboolean power_off;
151
152         devc = sdi->priv;
153
154         ret = SR_OK;
155         switch (key) {
156         case SR_CONF_LIMIT_SAMPLES:
157         case SR_CONF_LIMIT_MSEC:
158                 ret = sr_sw_limits_config_get(&devc->limits, key, data);
159                 break;
160         case SR_CONF_SAMPLERATE:
161                 *data = g_variant_new_uint64(devc->samplerate);
162                 break;
163         case SR_CONF_PROBE_FACTOR:
164                 if (!cg)
165                         return SR_ERR_CHANNEL_GROUP;
166                 ret = bl_acme_get_shunt(cg, &shunt);
167                 if (ret == SR_OK)
168                         *data = g_variant_new_uint64(shunt);
169                 break;
170         case SR_CONF_POWER_OFF:
171                 if (!cg)
172                         return SR_ERR_CHANNEL_GROUP;
173                 ret = bl_acme_read_power_state(cg, &power_off);
174                 if (ret == SR_OK)
175                         *data = g_variant_new_boolean(power_off);
176                 break;
177         default:
178                 return SR_ERR_NA;
179         }
180
181         return ret;
182 }
183
184 static int config_set(uint32_t key, GVariant *data,
185                       const struct sr_dev_inst *sdi,
186                       const struct sr_channel_group *cg)
187 {
188         struct dev_context *devc;
189         uint64_t samplerate;
190         int ret;
191
192         devc = sdi->priv;
193
194         ret = SR_OK;
195         switch (key) {
196         case SR_CONF_LIMIT_SAMPLES:
197         case SR_CONF_LIMIT_MSEC:
198                 ret = sr_sw_limits_config_set(&devc->limits, key, data);
199                 break;
200         case SR_CONF_SAMPLERATE:
201                 samplerate = g_variant_get_uint64(data);
202                 if (samplerate > MAX_SAMPLE_RATE) {
203                         sr_err("Maximum sample rate is %d", MAX_SAMPLE_RATE);
204                         ret = SR_ERR_SAMPLERATE;
205                         break;
206                 }
207                 devc->samplerate = samplerate;
208                 bl_acme_maybe_set_update_interval(sdi, samplerate);
209                 break;
210         case SR_CONF_PROBE_FACTOR:
211                 if (!cg)
212                         return SR_ERR_CHANNEL_GROUP;
213                 ret = bl_acme_set_shunt(cg, g_variant_get_uint64(data));
214                 break;
215         case SR_CONF_POWER_OFF:
216                 if (!cg)
217                         return SR_ERR_CHANNEL_GROUP;
218                 ret = bl_acme_set_power_off(cg, g_variant_get_boolean(data));
219                 break;
220         default:
221                 ret = SR_ERR_NA;
222         }
223
224         return ret;
225 }
226
227 static int config_list(uint32_t key, GVariant **data,
228                        const struct sr_dev_inst *sdi,
229                        const struct sr_channel_group *cg)
230 {
231         uint32_t devopts_cg[MAX_DEVOPTS_CG];
232         GVariant *gvar;
233         GVariantBuilder gvb;
234         int ret, num_devopts_cg = 0;
235
236         (void)sdi;
237         (void)cg;
238
239         ret = SR_OK;
240         if (!cg) {
241                 switch (key) {
242                 case SR_CONF_DEVICE_OPTIONS:
243                         *data = g_variant_new_fixed_array(G_VARIANT_TYPE_UINT32,
244                                 devopts, ARRAY_SIZE(devopts), sizeof(uint32_t));
245                         break;
246                 case SR_CONF_SAMPLERATE:
247                         g_variant_builder_init(&gvb, G_VARIANT_TYPE("a{sv}"));
248                         gvar = g_variant_new_fixed_array(G_VARIANT_TYPE("t"),
249                                 samplerates, ARRAY_SIZE(samplerates), sizeof(uint64_t));
250                         g_variant_builder_add(&gvb, "{sv}",
251                                               "samplerate-steps", gvar);
252                         *data = g_variant_builder_end(&gvb);
253                         break;
254                 default:
255                         return SR_ERR_NA;
256                 }
257         } else {
258                 switch (key) {
259                 case SR_CONF_DEVICE_OPTIONS:
260                         if (bl_acme_get_probe_type(cg) == PROBE_ENRG)
261                                 devopts_cg[num_devopts_cg++] = HAS_PROBE_FACTOR;
262                         if (bl_acme_probe_has_pws(cg))
263                                 devopts_cg[num_devopts_cg++] = HAS_POWER_OFF;
264
265                         *data = g_variant_new_fixed_array(G_VARIANT_TYPE_UINT32,
266                                 devopts_cg, num_devopts_cg, sizeof(uint32_t));
267                         break;
268                 default:
269                         return SR_ERR_NA;
270                 }
271         }
272
273         return ret;
274 }
275
276 static void dev_acquisition_close(const struct sr_dev_inst *sdi)
277 {
278         GSList *chl;
279         struct sr_channel *ch;
280
281         for (chl = sdi->channels; chl; chl = chl->next) {
282                 ch = chl->data;
283                 bl_acme_close_channel(ch);
284         }
285 }
286
287 static int dev_acquisition_open(const struct sr_dev_inst *sdi)
288 {
289         GSList *chl;
290         struct sr_channel *ch;
291
292         for (chl = sdi->channels; chl; chl = chl->next) {
293                 ch = chl->data;
294                 if (bl_acme_open_channel(ch)) {
295                         sr_err("Error opening channel %s", ch->name);
296                         dev_acquisition_close(sdi);
297                         return SR_ERR;
298                 }
299         }
300
301         return 0;
302 }
303
304 static int dev_acquisition_start(const struct sr_dev_inst *sdi)
305 {
306         struct dev_context *devc;
307         struct itimerspec tspec = {
308                 .it_interval = { 0, 0 },
309                 .it_value = { 0, 0 }
310         };
311
312         if (dev_acquisition_open(sdi))
313                 return SR_ERR;
314
315         devc = sdi->priv;
316         devc->samples_missed = 0;
317         devc->timer_fd = timerfd_create(CLOCK_MONOTONIC, 0);
318         if (devc->timer_fd < 0) {
319                 sr_err("Error creating timer fd");
320                 return SR_ERR;
321         }
322
323         tspec.it_interval.tv_sec = 0;
324         tspec.it_interval.tv_nsec = SR_HZ_TO_NS(devc->samplerate);
325         tspec.it_value = tspec.it_interval;
326
327         if (timerfd_settime(devc->timer_fd, 0, &tspec, NULL)) {
328                 sr_err("Failed to set timer");
329                 close(devc->timer_fd);
330                 return SR_ERR;
331         }
332
333         devc->channel = g_io_channel_unix_new(devc->timer_fd);
334         g_io_channel_set_flags(devc->channel, G_IO_FLAG_NONBLOCK, NULL);
335         g_io_channel_set_encoding(devc->channel, NULL, NULL);
336         g_io_channel_set_buffered(devc->channel, FALSE);
337
338         sr_session_source_add_channel(sdi->session, devc->channel,
339                 G_IO_IN | G_IO_ERR, 1000, bl_acme_receive_data, (void *)sdi);
340
341         std_session_send_df_header(sdi);
342         sr_sw_limits_acquisition_start(&devc->limits);
343
344         return SR_OK;
345 }
346
347 static int dev_acquisition_stop(struct sr_dev_inst *sdi)
348 {
349         struct dev_context *devc;
350
351         devc = sdi->priv;
352
353         dev_acquisition_close(sdi);
354         sr_session_source_remove_channel(sdi->session, devc->channel);
355         g_io_channel_shutdown(devc->channel, FALSE, NULL);
356         g_io_channel_unref(devc->channel);
357         devc->channel = NULL;
358
359         std_session_send_df_end(sdi);
360
361         if (devc->samples_missed > 0)
362                 sr_warn("%" PRIu64 " samples missed", devc->samples_missed);
363
364         return SR_OK;
365 }
366
367 static struct sr_dev_driver baylibre_acme_driver_info = {
368         .name = "baylibre-acme",
369         .longname = "BayLibre ACME (Another Cute Measurement Equipment)",
370         .api_version = 1,
371         .init = std_init,
372         .cleanup = std_cleanup,
373         .scan = scan,
374         .dev_list = std_dev_list,
375         .config_get = config_get,
376         .config_set = config_set,
377         .config_list = config_list,
378         .dev_open = dev_open,
379         .dev_close = dev_close,
380         .dev_acquisition_start = dev_acquisition_start,
381         .dev_acquisition_stop = dev_acquisition_stop,
382         .context = NULL,
383 };
384 SR_REGISTER_DEV_DRIVER(baylibre_acme_driver_info);